667
Views
1
CrossRef citations to date
0
Altmetric
Section 5: Quiescence and sleep

Worms sleep: a perspective

ORCID Icon
Pages 427-429 | Received 13 Jul 2020, Accepted 26 Aug 2020, Published online: 14 Jan 2021

References

  • Anafi, R.C., Kayser, M.S., & Raizen, D.M. (2019). Exploring phylogeny to find the function of sleep. Nature Reviews. Neuroscience, 20 (2), 109–116. doi:10.1038/s41583-018-0098-9
  • Bennett, H.L., Khoruzhik, Y., Hayden, D., Huang, H., Sanders, J., Walsh, M.B., Biron, D., Hart, A.C. (2018). Normal sleep bouts are not essential for C. elegans survival and FoxO is important for compensatory changes in sleep. BMC Neuroscience, 19 (1), 10. doi:10.1186/s12868-018-0408-1
  • Cassada, R.C., & Russell, R.L. (1975). The dauerlarva, a post-embryonic developmental variant of the nematode Caenorhabditis elegans. Developmental Biology, 46 (2), 326–342. doi:10.1016/0012-1606(75)90109-8
  • Choi, S., Chatzigeorgiou, M., Taylor, K.P., Schafer, W.R., & Kaplan, J.M. (2013). Analysis of NPR-1 reveals a circuit mechanism for behavioral quiescence in C. elegans. Neuron, 78 (5), 869–880. doi:10.1016/j.neuron.2013.04.002
  • Choi, S., Taylor, K.P., Chatzigeorgiou, M., Hu, Z., Schafer, W.R., & Kaplan, J.M. (2015). Sensory neurons arouse C. elegans locomotion via both glutamate and neuropeptide release. PLoS Genetics, 11 (7), e1005359 doi:10.1371/journal.pgen.1005359
  • Driver, R.J., Lamb, A.L., Wyner, A.J., & Raizen, D.M. (2013). DAF-16/FOXO regulates homeostasis of essential sleep-like behavior during larval transitions in C. elegans. Curr. Biol, 23 (6), 501–506. doi:10.1016/j.cub.2013.02.009
  • Fry, A.L., Laboy, J.T., Huang, H., Hart, A.C., & Norman, K.R. (2016). A Conserved GEF for Rho-Family GTPases Acts in an EGF Signaling Pathway to Promote Sleep-like Quiescence in Caenorhabditis elegans. Genetics, 202 (3), 1153–1166. doi:10.1534/genetics.115.183038
  • Funato, H., Miyoshi, C., Fujiyama, T., Kanda, T., Sato, M., Wang, Z., … Yonezawa, T., (2016). Forward-genetics analysis of sleep in randomly mutagenized mice. Nature, 539 (7629), 378–383. doi:10.1038/nature20142
  • Grubbs, J.J., Lopes, L.E., der Linden, AMv., & Raizen, D.M. (2019). A salt-induced kinase (SIK) is required for the metabolic regulation of sleep. bioRxiv, 586701.
  • Hendricks, J.C., Finn, S.M., Panckeri, K.A., Chavkin, J., Williams, J.A., Sehgal, A., & Pack, A.I. (2000). Rest in Drosophila is a sleep-like state. Neuron, 25 (1), 129–138. doi:10.1016/S0896-6273(00)80877-6
  • Hill, A.J., Mansfield, R., Lopez, J.M., Raizen, D.M., & Van Buskirk, C. (2014). Cellular stress induces a protective sleep-like state in C. elegans. Current Biology : Cb, 24 (20), 2399–2405. doi:10.1016/j.cub.2014.08.040
  • Huang, H., Zhu, Y., Eliot, M.N., Knopik, V.S., McGeary, J.E., Carskadon, M.A., & Hart, A.C. (2017). Combining human epigenetics and sleep studies in Caenorhabditis elegans: a cross-species approach for finding conserved genes regulating sleep. Sleep, 40 (6), zsx063. doi:10.1093/sleep/zsx063
  • Jeon, M., Gardner, H.F., Miller, E.A., Deshler, J., & Rougvie, A.E. (1999). Similarity of the C. elegans developmental timing protein LIN-42 to circadian rhythm proteins. Science (New York, N.Y.).), 286 (5442), 1141–1146. doi:10.1126/science.286.5442.1141
  • Konietzka, J., Fritz, M., Spiri, S., McWhirter, R., Leha, A., Palumbos, S., Miller, D.M., 3rd., et al. (2020). Epidermal growth factor signaling promotes sleep through a combined series and parallel neural circuit. Current Biology : Cb, 30(1), 1–16 e13. doi:10.1016/j.cub.2019.10.048
  • LeBoeuf, B., Correa, P., Jee, C., & Garcia, L.R. (2014). Caenorhabditis elegans male sensory-motor neurons and dopaminergic support cells couple ejaculation and post-ejaculatory behaviors. eLife, 3, e02938. doi:10.7554/eLife.02938
  • Maluck, E., Busack, I., Besseling, J., Masurat, F., Turek, M., Busch, K.E., & Bringmann, H. (2020). A wake-active locomotion circuit depolarizes a sleep-active neuron to switch on sleep. PLoS Biology, 18 (2), e3000361 doi:10.1371/journal.pbio.3000361
  • Nath, R.D., Bedbrook, C.N., Abrams, M.J., Basinger, T., Bois, J.S., Prober, D.A., … Goentoro, L. (2017). The jellyfish cassiopea exhibits a sleep-like state. Current Biology, 27 (19), 2984–2990 e2983. doi:10.1016/j.cub.2017.08.014
  • Nath, R.D., Chow, E.S., Wang, H., Schwarz, E.M., & Sternberg, P.W. (2016). C. elegans stress-induced sleep emerges from the collective action of multiple neuropeptides. Current Biology : Cb, 26 (18), 2446–2455. doi:10.1016/j.cub.2016.07.048
  • Nelson, M.D., Lee, K.H., Churgin, M.A., Hill, A.J., Van Buskirk, C., Fang-Yen, C., & Raizen, D.M. (2014). FMRFamide-like FLP-13 neuropeptides promote quiescence following heat stress in Caenorhabditis elegans. Current Biology : Cb, 24 (20), 2406–2410. doi:10.1016/j.cub.2014.08.037
  • Nichols, A.L.A., Eichler, T., Latham, R., & Zimmer, M. (2017). A global brain state underlies C. elegans sleep behavior. Science, 356(6344), eaam6851. doi:10.1126/science.aam6851
  • Rechtschaffen, A. (1971). The Control of Sleep. In W. A. H. ed.Human Behavior and its Control., Shenkman Publishing Company, Inc.
  • Robinson, B., Goetting, D.L., Cisneros Desir, J., & Van Buskirk, C. (2019). aptf-1 mutants are primarily defective in head movement quiescence during C. elegans sleep.
  • Shaw, P.J., Cirelli, C., Greenspan, R.J., & Tononi, G. (2000). Correlates of sleep and waking in Drosophila melanogaster. Science (New York, N.Y.).), 287 (5459), 1834–1837. doi:10.1126/science.287.5459.1834
  • Singh, K., Chao, M.Y., Somers, G.A., Komatsu, H., Corkins, M.E., Larkins-Ford, J., … Hart, A.C. (2011). C. elegans Notch signaling regulates adult chemosensory response and larval molting quiescence. Current Biology : Cb, 21 (10), 825–834. doi:10.1016/j.cub.2011.04.010
  • Singh, R.N., & Sulston, J.E. (1978). Some observations on moulting in Caenorhabditis Elegans. Nematologica, 24 (1), 63–71. doi:10.1163/187529278X00074
  • Skora, S., Mende, F., & Zimmer, M. (2018). Energy scarcity promotes a brain-wide sleep state modulated by insulin signaling in c. elegans. Cell Reports, 22 (4), 953–966. doi:10.1016/j.celrep.2017.12.091
  • Turek, M., Besseling, J., Spies, J.P., Konig, S., & Bringmann, H. (2016). Sleep-active neuron specification and sleep induction require FLP-11 neuropeptides to systemically induce sleep. eLife, 5 doi:10.7554/eLife.12499
  • Turek, M., Lewandrowski, I., & Bringmann, H. (2013). An AP2 transcription factor is required for a sleep-active neuron to induce sleep-like quiescence in C. elegans. Current Biology : Cb, 23 (22), 2215–2223. doi:10.1016/j.cub.2013.09.028
  • van der Linden, A.M., Wiener, S., You, Y.J., Kim, K., Avery, L., & Sengupta, P. (2008). The EGL-4 PKG acts with KIN-29 salt-inducible kinase and protein kinase A to regulate chemoreceptor gene expression and sensory behaviors in Caenorhabditis elegans. Genetics, 180 (3), 1475–1491. doi:10.1534/genetics.108.094771
  • Wu, Y., Masurat, F., Preis, J., & Bringmann, H. (2018). Sleep counteracts aging phenotypes to survive starvation-induced developmental arrest in C. elegans. Current Biology, 28(22), 3610–3624. e3618. doi:10.1016/j.cub.2018.10.009
  • You, Y.J, Kim, J., Raizen, D.M. Avery, L.,(2008). Insulin, cGMP, and TGF-beta signals regulate food intake and quiescence in C. elegans: a model for satiety. Cell metabolism, 7, 249–257. doi:10.1016/j.cmet.2008.01.005

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.